[0001] The present invention relates to self-clamping mold assemblies for the molding of
articles, and in embodiments to a self-clamping mold assembly for the molding of articles
from a material which is cured by the control of temperature and pressure.
Background
[0002] A variety of mold assemblies are currently available for the molding of articles
from materials cured by the control of temperature and pressure. In the past, mold
assemblies have consisted of single or multiple cavity, multiple plate molds. The
molds were generally pre-heated to a desired temperature, clamped or compressed by
an injection mold machine, and then injected with the desired molding material. The
injection of the molding material was often accomplished using an injection press.
The molding material in the cavity or cavities of the molds was then cured under pressure
within the injection press.
[0003] The production rate of injection molded articles in molding systems using mold assemblies
of the type mentioned above has been increased by the use of conveyors to transport
the molds between injection, compression, and heating stations. For example, U.S.
Patent No. 1,935,794 provides a method of molding articles in which the mold is transported
by a transfer system between a heating station and a compression station, and maintained
under compression during transport through a curing station.
[0004] A disadvantage, specifically with respect to molding systems using an injection system
having in injection press to apply continued pressure to the mold during both injection
and curing of the material, is that the injection press is primarily utilized as a
press, rather than as an injector. The use of an expensive injection press for providing
pressure to the mold, rather than solely for the injection of material is inefficient,
and reduces the overall cost effectiveness of the system.
[0005] Another disadvantage of molding systems using past mold assemblies is the high forces
or clamping forces required to be applied by the injection system to resist both the
operating pressure externally applied to the mold during the injection of material
into the mold, and a separation pressure internally applied to the mold as a result
of the injection of material and initial curing of the material within the mold. The
component of the separation pressure attributed to the injection of material is proportional
to the cross-sectional area of the molding cavity. The clamping or resistance force
required must be greater than the operating and separation pressures. Thus, as the
size of the product to be molded increases, the clamping force required to be applied
also increases.
[0006] With conventional molds, the separation force generated is a function of the entire
exposed or unloaded components forming the internal mold cavity, or the cross-sectional
area of the mold cavity. With a self-clamping mold, however, the separation force
is only a function of the exposed portions of the mold, and the cross-sectional area
of the runners and sprue openings. Thus, prior mold devices required larger clamping
forces to be applied by the press, since the molds were not pre-loaded.
[0007] A still further disadvantage of conventional molding systems is that the molded articles
produced typically require additional processing to remove flash from the articles.
The formation of flash, and its removal, result in increased costs due to wasted material,
and the additional process of deflashing the article, or removing the excess material,
and finishing the article. An additional inspection of each article may also be required,
which further increases the overall labor expense of the system.
[0008] The present invention provides a new mold assembly for molding articles e.g. from
high grade compound material cured by the application of temperature and pressure.
As used herein, the term "cure" is intended to include treatment by the application
of either heating or cooling temperatures, cross-linking of the material to be cured,
and other material treatments whereby the molding process is completed and the material
to be molded attains its finished condition.
[0009] The mold assembly of the present invention is a multi-section, self-clamping mold
which is preferably usable in an automatic nonsynchronous molding system, however,
it should be understood that the mold may also be used in synchronous molding systems.
During operation of one nonsynchronous type, the mold is first injected with molding
material by a material injection system. A transfer system is then used to transport
the mold to a curing apparatus for curing the article. The curing process includes
processes which change the physical form of the material,. e.g. conventional vulcanization,
and melting and solidification as in thermoplastic crystallization. Once the molded
article is cured, the mold is transported by the transfer system to a mold separator-assembler
wherein the mold is unclamped and disassembled into its sections, so that the finished
molded article may be removed from a mold section. The empty mold sections are then
pre-treated, assembled, and pre-loaded for transport from the mold separator-assembler
by the transfer system to a position for production of additional molded articles.
[0010] A controller system choreographs operation of the injection system for injection
of moulding material into the moulds, and the proper timed movement of the moulds
by the transfer system through the material injection press, curing apparatus and
mould separator-assembler to ensure the proper curing of the moulded articles. This
is described in EP-A-488508.
[0011] EP-A-488508, published after the priority date of the present disclosure but with
an earlier priority date, also disclosed in Fig. 4 a self-clamping valve assembly
with a mould body formed of three stacked plates defining between them a mould cavity,
and a lock mechanism including two tie rods for holding the plates together. Each
tie rod has an enlarged head which sits in a socket of the top mould plate, engaging
the plate through strong spring washers. The shaft of each tie rod passes through
the upper plates and locks into a keyhole of the bottom plate, the keyhole having
a downwardly-directed inclined cam surface and the tie rod shaft having an upwardly-directed
cam follower pin so that a quarter turn of the tie rod compresses the plates together
through the springs.
[0012] The present invention provides a self-clamping mould assembly comprising
a body and a lock mechanism housed within the body,
the body having two or more aligned, independent plates each having a mould cavity
portion and a lock bore portion with a central axis,
the lock mechanism including a tie road assembly for engagement with one of the
independent plates and a force generator assembly for engagement with another of the
independent plates, the tie rod and force generator assemblies engaging with the lock
bore portions of the plates,
the tie rod assembly having a tie rod adapted for rotatable engagement within said
assembly, and
the force generator assembly having a lock shaft adapted for locking engagement
with the tie rod and a spring biasing member retained with respect to the lock shaft,
whereby upon locking engagement of the tie rod with the lock shaft compressing the
spring biasing member the plates are maintained in clamped condition.
[0013] One feature of this construction is the division of an elongate clamping element,
extending through the assembly, axially into two sections which are releasably engagable,
e.g. by a rotation or relative movement between them. When engaged, the composite
element can withstand the clamping force. When released, it can be taken apart.
[0014] One element may be rotatable around its own axis relative to the assembly, the other
fixed.
[0015] Another feature is that a spring biasing means is provided on a clamping element
to exert a force in a clamping direction relative to the mould sections, and exerts
its biasing force on the sections when they are pressed together. Typically, the spring
biasing means are compressed by a machine when the mould is assembled, and the clamping
element (tie rod assembly) locked using a locking movement into a condition in which
the relatively compressed spring biasing means (force generator assembly) tends to
exert a clamping effect on the sections after release of externally-applied compression.
[0016] The spring biasing means may be provided surrounding part of a rotationally-fixed
or rotationally-free clamping element portion, as mentioned above.
[0017] The body preferably has three aligned and independent plates. The mould is preferably
a single cavity mould, but moulds having different internal configurations may be
used with the system, including multiple cavities, to enable the concurrent moulding
of different parts. With the plates clamped, pressures due to injection of moulding
material are contained by the mould. Only forces arising in runner and/or sprue openings,
e.g. in one plate, which access the moulding cavity in the mould, are required to
be contained or clamped by an external force during injection.
[0018] The self-clamping mould can be maintained within the injection system for a time
sufficient to cure, set or partially cure the material within the runners or sprue
openings, by which material is provided to the pressurized or pre-loaded mold cavity.
Because the sprue opening or gate is small, the impact of temperature and pressure
conditions result in rapid changes to the material at that location. The rapid material
changes set the material within the sprue gates to prevent the removal of material
or reverse material flow out of the mold. Thus, the self-clamping mold need only be
maintained in clamped or compressed position within the injection press of the injection
system to cure the material within the sprue openings.
[0019] In conventional molding techniques, the injection system or compression press, applies
the necessary external force for clamping the mold. Using such conventional techniques,
the cross-sectional area of the entire mold cavity is exposed, and the clamping force
required due to the injection force component of the separation force is transferred
by the mold body to the injection system.
[0020] The mold lock mechanisms secure the plates in clamped, pre-loaded condition, arranged
in stacked or parallel planar relationship. Each lock mechanism includes a tie rod
assembly engaged with one of the plates, and a force generator assembly engaged with
another plate. The tie rod and force generator assemblies are engaged within the lock
bore portion of each plate. The tie rod assembly includes a tie rod which is rotatable
within the tie rod assembly for engagement with the force generator assembly.
[0021] The force generator assembly includes a lock shaft which is engaged by the tie rod
and a spring biased member. Upon engagement of the tie rod with the lock shaft, the
spring biased member is compressed to maintain the plates in clamped condition. In
the clamped or pre-loaded condition, the mold plates are under pressure without the
use of an external press or other clamping or loading force applied by an injection
press.
[0022] Prior to injection of material into the mold, the mold is preferably pre-treated
with any necessary mold coatings, heated to a desired temperature to assist with curing
of the material, or provided with any inserts or other internal elements to be included
within the article to be molded. Upon completion of the pre-treatment process, the
mold plates are assembled into aligned position and the lock mechanisms are mechanically
engaged to clamp sections of the mold together under a force of approximately 26.7
kN (6000 pounds), or 13.3 kN (3000 pounds) per lock mechanism, in the example of the
preferred and illustrated embodiment. It should be understood that one or more lock
mechanisms may be used which apply any desired force per lock mechanism, as may be
needed in the particular molding operation. The mold is then moved into position for
engagement with an injection system nozzle for the injection of the molding material.
[0023] Embodiments are now described with reference to the accompanying drawings, in which:
Figure 1 is a schematic view of a self-clamping mold assembly;
Figure 2 is a partial, cross-sectional view of a tie rod assembly illustrated in Figure
1;
Figure 3 is a top view of the tie rod assembly shown in Figure 2;
Figure 4 is a partial cross-sectional view of the force generator assembly;
Figure 5 is a top view of the force generator assembly shown in Figure 4;
Figure 6 is a partial, cross-sectional view of the lock shaft of the force generator
assembly;
Figures 7 and 8 are top and bottom views, respectively, of the lock shaft illustrated
in Figure 6;
Figure 9 is a cross-sectional view of the lock shaft bearing of the force generator
assembly;
Figure 10 is a top view of the lock shaft bearing of Figure 9;
Figure 11 is a schematic, partial, cross-sectional view of a different embodiment
of self-clamping mold assembly, positioned for engagement by a portion of an injection
press of the injection system; and
Figure 12 is a schematic, partial, cross-sectional view of another embodiment of a
lock mechanism of a self-clamping mold assembly.
[0024] Figure 1 illustrates a self-clamping mold assembly embodying the invention for use
during the injection molding of material M cured by the application of temperature
and pressure. The assembly, generally referred to at reference numeral 10, includes
a mold body 12 and two mold lock mechanisms 14, 16.
[0025] The illustrated mold body 12 has three independent plates, a top plate 18, a center
plate 19, and a bottom plate 20. The plates are preferably constructed of a cast material,
and include a mold cavity portion 22 and a lock bore portion 24 having a central axis
24a. Each of the plates additionally includes an alignment opening 23 for receiving
an alignment dowel 25. The dowel 25 is engaged with each of the openings 23 to maintain
the plates 18, 19, 20 in aligned position relative to one another.
[0026] In the preferred and illustrated embodiment, mold inserts 26 are also provided in
the mold cavity portions 22. Although the mold cavity portion 22 in each of the plates
forms a mold cavity 22a, and the mold cavity may be used to receive the molding material
M, in the preferred embodiment, the mold inserts 26 of each plate are used to form
a material cavity 28a for receiving molding material.
[0027] Each of the mold inserts 26 includes a seat 29 to support, retain and locate the
inserts within its respective mold cavity portion 22, and a material cavity portion
28 for receiving the material M or other elements E to be molded into the product.
In the illustrated embodiment, the mold insert 26 of the bottom plate 20 is further
secured within its seat 29 by a threaded fastener 30 engaged with an opening 31 in
the insert and an opening 32 in the bottom plate. Similar openings and threaded fasteners
may be used in the top and center plates to secure their respective inserts. Such
fasteners additionally assist with orientation of the mold inserts within their respective
plates.
[0028] The mold inserts 26 provide the advantage that the desired size, number, or shape
of the material cavity 28a can be quickly changed. Damaged cavity portions may also
be economically replaced, and many different products may be manufactured using a
common style mold body 10.
[0029] The top mold plate 18 includes sprue openings or runners 34, which provide a passage
for the material M to be provided to the material cavity 28a of the mold 10. Additionally,
a central opening 36 and a center pin member 38, engaged within the central opening,
are provided. The central opening 36 and pin member 38 have a vertical center axis
37.
[0030] Intermediate the center pin member 38 and central opening 36, a layer of semi-rigid
material 40, such as bronze Teflon, is provided. The intermediate layer 40 enables
engagement of the pin member 38 within the central opening 36 by surrounding the pin
member with the layer of material and pressing the member and layer into engagement
within the central opening 36. Once engaged within the central opening 36, the intermediate
layer 40 deforms to a semi-rigid condition, and maintains the member 38 engaged within
the opening. The intermediate layer 40 additionally enables axial movement of the
center pin member 38 within to engage a rigid element E. This movement compensates
for tolerance variation of element E, enables a seal to be provided between the pin
member and element E, and thus eliminates flash resulting during injection.
[0031] In the illustrated embodiment of Figure 1, the center pin member 38 engages a rigid
element E which is centered within the mold cavity 28a. Rigid elements E may be provided
within the material cavity 28a to enable molding of the elements within the product
being manufactured. Engagement of the element E with the pin member 38 properly positions
and seals the element within the material cavity 28a for molding of the element E
into the item being manufactured. A retainer 33 may also be provided for engagement
with an opening in the bottom plate 20 to further assist with properly positioning
the element E.
[0032] In the event no such elements E are required to be molded into the product, the use
of a pin member and center opening may be eliminated. A mold 10'' having such an alternate
embodiment is illustrated in Figure 11. As each of the components of the alternate
embodiment 10'' are substantially similar to the embodiment illustrated in Figure
1, a double prime designation will be used to reference the components of this alternate
embodiment.
[0033] In the illustrated embodiment of Figure 1, each of the mold plates 18, 19, 20 includes
plate transport carrier wheels 42, preferably four wheels per plate. The wheels 42
are used during transport of the individual plates 18, 19, 20 between various work
stations subsequent to injection of the molding material M. The wheels 42, when used
in conjunction with a continuous conveyor or other transfer system, provide rolling
contact to move the respective plate in the desired direction. Thus, when used in
conjunction with a conveyor system, the plates are capable of substantially parallel
horizontal movement.
[0034] In the preferred embodiment, the transport wheels 42 are secured on cast bosses by
bumpers 44 extending from each plate. The bumpers 44 function to maintain mold position
relative to the transfer system, while maintaining transport wheel 42 contact, preventing
excessive plate rotation or angular movement, and preventing excessive lateral movement.
[0035] Additionally, transport coupling notches 46 are also provided on each plate adjacent
the bumpers 44. As shown in Figure 1, the coupling notches 46 are positioned on the
corners of each plate, and may be used for engagement by an external actuator for
moving the plate and/or plates in a horizontal direction.
[0036] The mold plates additionally include one or more plate locating detents 48. As illustrated
in the top plate 18 of Figure 1, the detents 48 provide a means for positively locating
and positioning the mold 10 for treatment, engagement with an external actuator for
desired movement and engagement with other transportation systems.
[0037] The mold insert 26 of the bottom plate 20 of the mold body includes a precision base
opening 49 and a rectangular shaped precision base portion 50. Using either or both
of the precision opening 49 or base portion 50, the mold assembly 10 may be readily
transferred between necessary process stations. The precision opening 49 and portion
50 allow economical transfer systems such as conveyors to be employed to transport
the mold assembly 10.
[0038] Turning now to Figures 2-10, a first embodiment of the components of the lock mechanisms
14, 16 of the mold assembly 10 are illustrated. As the first and second lock mechanisms
14, 16 of this embodiment are identical, only the first mechanism 14 will be discussed
in detail, and the components of the second lock mechanism 16 will be referred to
by the same reference numerals used in connection with the first lock mechanism 14.
[0039] Additionally, although the use of two lock mechanisms 14, 16 is illustrated, the
number and size of lock mechanisms used may be determined by one of ordinary skill
in the art in light of the design of the product to be manufactured; the geometry
of the product, including its cross-sectional area and physical shape; and the characteristics
of the material M used, such as viscosity changes or chemical reactions under various
temperature and pressure conditions.
[0040] The mold lock mechanism 14 of Figure 1 has a central axis 14a aligned with the central
axis 24a of the lock bore portion 24 when the lock mechanism is engaged with the mold
assembly 10. The lock mechanism 14 includes a tie rod assembly 52 and a force generator
assembly 54. Upon axial movement of the tie rod assembly 52 into engagement with the
force generator assembly 54 as in Figure 1, the lock mechanism 14 of the embodiment
clamps the plates 18, 19, 20 under a force of approximately 13.3 kN (3,000 pounds).
The lock mechanisms 14, 16 are thus used to pre-load the components of the mold assembly
10 with a desired pressure, and thereby apply the necessary force to prevent separation
of the mold plates 18, 19, 20 and associated inserts 26 during and after the injection
of material M.
[0041] Figure 2 schematically illustrates the locking tie rod assembly 52. The tie rod assembly
52, engaged with the top plate 18, includes a tie rod 56 rotatably engaged within
the assembly, a tie rod bearing 58, a thrust washer 60, a retainer 62 and a locking
pin 64.
[0042] The tie rod 56 transfers the force created by the force generator assembly to clamp
the plates 18, 19, 20 of the mold assembly 10. It further enables mold assembly, disassembly
and engagement with adjacent mold plates. The tie rod 56 includes a head portion 66
on one end 68 thereof, the locking pin 64 on a conically shaped second end 70 thereof,
spaced from the one end 68, and a shaft 72 intermediate the ends 68, 70. The second
end 70 is conically shaped for ease of engagement of the tie rod 56 during automated
assembly of the mold 10. The shaft 72 is engaged through tie rod bearing 58 and supports
the retainer 62, which is a locking retaining collar secured surrounding the shaft.
[0043] The head portion 66 is rotatably engaged within the tie rod bearing 58, and additionally
includes key slots 74 and spring biased ball detents 76. As best shown in Figures
2 and 3, the key slots are provided to enable rotation of the tie rod 56 by an actuator
into engagement with the force generator assembly 54. The conventional ball detents
76 are provided for aligning the tie rod 56 in spring biased engagement with the tie
rod bearing 58. Such engagement resists rotation of the tie rod 56 when it is in the
unlocked or unloaded position, aligned for engagement with the force generator assembly
54.
[0044] The tie rod bearing 58 is a stepped cylindrical bearing for aligning the assembly
52 within the lock bore portion 24, and to assist with positioning of the tie rod
56. The tie rod bearing 58 is seated within the lock bore portion 24 of the top plate
18, and includes a cup shaped portion 78 with an internal bearing surface 79 for engagement
with the head portion 66 of the tie rod 56, and a base portion 80 having a central
opening 81 therethrough for engagement by the shaft 72 of the tie rod. The bearing
58 may be fastened to the mold lock bore portion 24 of the top plate 18 using conventional
fasteners engaged through threaded openings 77 provided through the bearing surface
79 of the cup portion 78. The ball detents 76 of the tie rod 56 are engaged within
openings or depressions 82 formed in an internal surface of the cup portion 78 to
maintain the position of the tie rod 56 when the assembly 10 is in aligned an unclamped
condition, as described above.
[0045] The tie rod thrust washer 60 is positioned along the shaft 72 of the tie rod abutting
the base portion 80 of the tie rod bearing 58 on one side, with the retainer or retaining
collar 62 on the other side. The washer 60 prevents movement of the tie rod 56 in
the direction of the central lock mechanism axis 14a.
[0046] The retaining collar 62 is clamped to the tie rod shaft 72 by a conventional fastener
63. The collar 62 works in combination with the tie rod thrust washer 60, tie rod
56, and tie rod bearing 58 to position the tie rod and prevent axial movement in a
direction along the central lock mechanism axis 14a.
[0047] The locking pin 64 on the second end 70 of the tie rod 56, engages the force generator
assembly 54. Upon engagement between the tie rod 56 and force generator assembly 54,
the plates 18, 19, 20 of the mold assembly 10 are in clamped condition. The locking
pin 64 is engaged through an opening 84 formed in the second end 70 in a direction
transverse to the central lock mechanism axis 14a, and extending outwardly from the
shaft 72 on both sides thereof.
[0048] Figures 4 and 5 schematically illustrate the force generator assembly 54 of the mold
assembly 10. The force generator assembly 54 includes a non-rotating lock shaft 86,
a locking bearing 88 having a square shaped opening 89 for receiving the lock shaft,
a spring biasing member 90 and a retainer 92. In the illustrated embodiment of Figure
4, the retainer 92 is a conventional nut. The force generator assembly 54 is engaged
within the lock bore portion 24 of the bottom plate 20.
[0049] The lock shaft 86 engages the tie rod 56 during engagement of the assemblies 52,
54 to provide clamped engagement between the plates 18, 19, 20. The lock shaft 86
includes a container 94 on one end 96, with the threaded retainer 92 removably engaged
with threads 97 on a second end 98 of the lock shaft 86, and a support shaft 100 intermediate
the ends 96, 98. A portion 101 of the support shaft 100 adjacent the container 94
is substantially square in cross-section, while the remainder of the shaft has a cylindrical
cross-section.
[0050] The container 94 on the one end 96 of the lock shaft 86 includes a slot opening 104
therein, and a lock surface 106 within the container adjacent the slot opening. The
slot opening has a key-shaped cut out configuration, and the non-cut out portions
are provided with the lock surface 106 adjacent the slot opening 104, for locking
engagement with the tie rod locking pin 64.
[0051] During engagement of the lock shaft 86 within the lock bearing 88, surface 108 of
the lock shaft container 94 engages the lock shaft bearing 88. The square cross-sectional
portion 101 of the shaft 100 is also through the bearing opening 89 in the bearing
88, to prevent rotation of the lock shaft 86. The lock shaft bearing 88 may also be
secured to the bottom mold plate 20 via a conventional fastener engaged through openings
110.
[0052] To engage the tie rod and force generator assemblies 52, 54, the non-rotating lock
shaft 86 is engaged by the tie rod 56. The key-shaped opening 104 in the lock shaft
container enables access into the container 94 by the locking pin 64 of the tie rod
56. A conical recess 112 is provided in the container 94, for mating engagement with
the conical shaped second end 70 of the tie rod.
[0053] The shaft 100 of the lock shaft is engaged through the opening 89, and supports the
spring biased member 90. In the illustrated embodiment of Figure 4, the spring biased
member 90 is a plurality of commercial spring washers 91, of a size to obtain sufficient
spring resistance to thereby generate the desired spring force during compression
of the washers, engagement of the assemblies 54, 56 and movement of the plates to
the clamped condition.
[0054] The spring washers 91 are positioned along the shaft 100 of the lock shaft between
conventional washers 102, and the washers 91 and 102 are prevented from removal from
the shaft by the retainer 92. The retainer 92 is additionally used to pre-load the
spring washers 91 with the desired pressure. In the event it is necessary to change
defective spring washers or replace spring washers to generate a different force,
the retainer 92 may be readily removed, and the desired spring washers, or other spring
biased members, engaged along the shaft 100. Engagement of the retainer 92 with the
lock shaft threads 97 ensures continued spring washer tension.
[0055] Locking engagement of the tie rod 56 with the lock shaft 86, as in Figure 1, is provided
upon the application of force to the tie rod by an actuator device (not illustrated).
As described in EP-A-488508 an actuator device, such as an hydraulic cylinder, engages
the key slots 74 of the head portion 66 and may apply a force up to e.g. 22.2 kN (5,000
pounds) in the direction of the central axis 14a of each lock mechanism 14, 16.
[0056] Turning now to Figure 12, a second embodiment of the lock mechanism 14′ of the mold
assembly 10′ is illustrated. As the second embodiment of the lock mechanism has components
substantially similar to those previously described, the similar components will be
referred to using the same reference numerals, but with a single prime designation.
Only the differences between this preferred embodiment and the previous embodiment
will be discussed in further detail.
[0057] The tie rod assembly 52′ is substantially as shown in Figures 2 and 3. As illustrated
in Figure 12, the tie rod assembly is engaged with and through the top and middle
plates 18′, 19′, respectively. The tie rod 56′ is shown in position aligned for engagement
with the force generator assembly 54′.
[0058] Various components of the force generator assembly 54′ differ from those of the first
embodiment, and include the non-rotating lock shaft 200, a locking bearing 202 having
a cylindrical opening 203 with flat surfaces 204 for receiving the lock shaft, a spring
biased member 90′ supported on a wear sleeve 205 and a retainer 206. The locking bearing
202 additionally includes an extended cylindrical flange 207, such that upon engagement
of the shaft and bearing, the shaft is substantially surrounded by the bearing 202.
[0059] The lock shaft 200 engages the tie rod 56′ to provide clamped engagement between
the plates 18′, 19′, 20′. The lock shaft 200 includes a container 94′ on one end 96′,
and a threaded retainer 206 removably engaged with threads 97′ on a second end 98′
of the lock shaft 200. A support shaft 100′ is provided intermediate the ends 96′,
98′. A wear sleeve 205 is engaged over the intermediate support shaft 100′. A portion
101′ of the support shaft 100′ adjacent the container 94′ is cylindrical with flat
surfaces 208 forming a square in cross-sectional configuration, while the remainder
of the shaft 100′ has a cylindrical cross-section.
[0060] The threaded retainer 206 comprises a cup 210 with a threaded opening 212 for engagement
with the lock shaft, and a cylindrical flange 214 extending therefrom in the direction
of the lock shaft container 94′. The outside diameter of the cylindrical flange 214
of the cup retainer is sized to be slidably engaged within the internal diameter of
the cylindrical flange 207 of the bearing 202.
[0061] During engagement of the lock shaft 200 within the locking bearing 202, a surface
108′ of the lock shaft container 94′ engages the lock shaft bearing 202. The flat
surfaces 208 of the shaft 100′ are also engaged with the flat surfaces 204 of the
opening 203 in the bearing 202, to prevent rotation of the lock shaft 200. The shaft
100′ of the lock shaft and adjacent wear sleeve 205 support the spring biased member
90′.
[0062] In the embodiment of Figure 12, as in Figure 4, the spring biased member 90′ is a
plurality of commercial spring washers 91′. The wear sleeve 205 acts as an inner fixed
stop for the spring washers 91′. The spring washers 91′ are positioned along the shaft
100′ and wear sleeve 205 between conventional washers 102′, and the washers 91′, 102′
are prevented from removal from the shaft by the bearing 202 and retainer cup 210.
As illustrated, the extended flanges 207, 214 are engaged such that the retainer cup
210 is within the bearing 202, and the washers 91′, 102′ are captured within a chamber
216 formed by the sliding cylinders 207, 214. The flange 214 of the retainer 206 additionally
provides a fixed stop so that the spring washers 91′ do not over compress. The inner
surface 215 of the flange 214 also bears any side pressure during compression of the
washers 91′.
[0063] To engage the tie rod and force generator assemblies 52′, 54′, the lock pin 64′ of
the tie rod 56′ is aligned with and engaged through the key opening 104′ of the lock
shaft 200. The conical recess 112′ in the container 94′ is then engaged with the conical
shaped second end 70′ of the tie rod. Using an actuator device to apply a force to
the tie rod along the central axis 14a, the lock shaft and bearing compress the spring
washers 91′.
[0064] In the embodiments illustrated in Figures 1, 11 and 12, upon locking engagement of
the tie rod with the lock shaft, the spring biased members of each lock mechanism
are compressed to a minimum of approximately 50%, and preferably to 75% in the illustrated
examples. At these compression levels, the combination of two lock mechanisms places
the mold plates under a force of approximately 26.7 kN (6000 pounds), or approximately
13.3 kN (3000 pounds) per lock mechanism, in the examples shown in the application.
[0065] The application of pressure by an actuator device compresses the spring washers 91,
91′ and engages the aligned second end 70, 70′ and locking pin 64, 64′ of the tie
rod through the key opening 104, 104′ of the lock shaft container 94, 94′. Thereafter,
the actuator applies a torque to the tie rod 56, 56′ to move the locking pin 90 degrees
out of alignment with the key opening 104, 104′ and into locking engagement with the
lock surface 106, 106′. Once engaged with the lock surface, the second end 70, 70′
of the tie rod 56 remains engaged with the lock shaft container 94, 94′.
[0066] With the tie rod and force generator assemblies 52, 54, 52′, 54′ thus maintained
in locking engagement, the spring biased member 90, 90′ of the preferred and illustrated
embodiments is compressed to the desired percentage of its normal condition, and maintains
the mold plates together in clamped condition. In clamped condition, the forces generated
by the lock mechanisms 14, 16, 14′, 16′ are transferred to the mold body and mold
inserts 26, 26′. By clamping the mold body components under forces as great as 26.7
kN (6,000 pounds), the internal pressures generated during and after injection of
the molding material M which tend to separate the plates and mold inserts 26, 26′
are unsuccessful. In the event the lock mechanisms 14, 16, 14′, 16′ do fail to overcome
the separation forces, or are unsuccessful at maintaining the plates and mold inserts
in clamped condition, the result may be poorly cured or defective products, or flash
on the items being manufactured, which must then be removed.
[0067] In the past, mold assemblies without clamping mechanisms were required to be externally
clamped within an injection press during the injection and curing of the molding material.
Such external clamping was required to overcome the forces tending to separate the
mold body, and to cure the molding material. The level of external force required
to be applied by such injection presses was proportional to the cross-sectional area
of the material cavity of the mold receiving molding material.
[0068] The self-clamping mold assemblies 10,10′,10'' described herein may enable a reduction
in both the time the mold is required to be maintained within the injection press,
and in the level of force required to be externally applied to the mold. Specifically,
since the material cavity portions 28, 28′, 28'' of the mold inserts 26, 26′, 26''
and plates are pre-loaded by the lock mechanisms under a desired pressure generated
by the force generator assembly, only the open mold areas such as the runners or sprue
openings 34, 34'' are required to be contained or pressurized by an external clamping
force while in the injection system.
[0069] The mold assembly 10'' schematically illustrated in Figure 11 is in a position for
injection by a runner plate 120 of an injection press of an injection system. A still
further third embodiment of the lock mechanism 14'' is illustrated in Figure 11, which
operates similarly to the embodiments previously described. Reference numerals with
a double prime designation refer to components similar to those described in the prior
embodiments.
[0070] The runner plate 120 is engaged with a nozzle 122 of the press supplied with material
M'' by an injector 124, and an interconnected extruder (not illustrated). Once the
runner plate 120 is engaged with the top plate 18'' of the mold, the nozzle 122 may
supply the runners 34'' with material M'' via openings 126 in the runner plate.
[0071] As the runners 34'' are substantially smaller in cross-sectional area than the material
cavity 28a'', the required clamping forces are accordingly reduced, as well as the
time required to maintain the mold within the injection system to initiate the curing
of material within the runners. Typically, a mold as described herein may reduce the
necessary clamping force applied by the injection system by a factor of 4, such that
where a force of 17.8 kN (4,000 pounds) was previously required during the injection
of the material into a conventional mold, a force of only 4.45 kN (1,000 pounds) would
be required for a self-clamping mold assembly 10,10′,10'' as described.
[0072] It will be understood that variations may be made in the specific embodiments described.
1. A self-clamping mould assembly (10) comprising
a body (12) and a lock mechanism (14,16) housed within the body,
the body having two or more aligned, independent plates (18,19,20) each having
a mould cavity portion (22) and a lock bore portion (24) with a central axis (24a),
the lock mechanism (14,16) including a tie rod assembly (52) for engagement with
one of the independent plates and a force generator assembly (54) for engagement with
another of the independent plates, the tie rod and force generator assemblies (52,54)
engaging with the lock bore portions (24) of the plates,
the tie rod assembly (52) having a tie rod (56) adapted for rotatable engagement
within said assembly, and
the force generator assembly (54) having a lock shaft (86) adapted for locking
engagement with the tie rod (56) and a spring biasing member (90) retained with respect
to the lock shaft (86), whereby upon locking engagement of the tie rod (56) with the
lock shaft (86) compressing the spring biasing member (90) the plates (18,19,20) are
maintained in clamped condition.
2. A mould assembly according to claim 1 in which the tie rod assembly (52) includes
the tie rod (56) and a bearing (58), the tie rod (56) being adapted for rotatable
engagement within said bearing (58) and the bearing (58) being seated within the lock
bore portion (24) of one (16) of the independent plates.
3. A mould assembly according to claim 1 or claim 2, in which the force generator assembly
has a slot opening (104) in said lock shaft (86) for engagement with the tie rod (56),
a locking bearing (88), and a retainer (92,102) maintaining the spring biasing member
(90) in engagement against the locking bearing (88), whereby upon locking engagement
of the tie rod (56) with the lock shaft (86) the spring biasing member (90) is compressed
approximately 50%.
4. A mould assembly according to claim 2 or any claim dependent thereon in which the
tie rod (56) includes a head portion (66) at one end thereof rotatably engaged within
the tie rod bearing (58), a locking pin (64) at a second end thereof distant from
said one end, and a shaft (72) extending between said ends, engaged with said tie
rod bearing (58).
5. A mould assembly according to claim 3 or claim 4 in which the lock shaft (86) includes
a container (94) at one end thereof engaged within the locking bearing (88), a retainer
(92,102) removably engaged on a second end of said lock shaft (86) distant from said
one end, and a support shaft (100) extending between said ends, engaged with the locking
bearing (88) and supporting the spring biasing member (90).
6. A mould assembly according to claim 5 in which the lock shaft container (94) of the
force generator assembly (54) includes said slot opening (104) therein, and further
includes a lock surface (106) within said container (94) and adjacent said slot opening
(104) for locking engagement by said tie rod locking pin (64).
7. A mould assembly according to claim 6 in which the tie rod and force generator assemblies
(52,54) each have a central axis aligned with said lock bore portion axis (24a) such
that the tie rod (56) and lock shaft (86) are aligned with that lock bore portion
axis (24a) and wherein upon axial movement of the tie rod (56) engaging the locking
pin (64) with the lock surface (106) the lock mechanism clamps the plates (18,19,20)
together with a force of approximately 13.3 kN (3,000 pounds).
8. A mould assembly according to claim 7 in which the tie rod (56) includes a spring
biased detent (76) having an axis transverse to the central axis of the tie rod assembly
(52), and engagable with an opening of the tie rod bearing (58) to maintain the tie
rod (56) in a predetermined alignment for reception of the tie rod locking pin (64)
into the slot opening (104) of the lock shaft.
9. A mould assembly according to any one of the preceding claims in which the body (12)
further includes a mould insert (26) seated within the mould cavity (22a) formed by
the independent plates (18,19,20) and having a material cavity (28a) for receiving
moulding material when the mould assembly is in clamped condition.
10. A mould assembly according to claim 9 in which each of the independent plates (18,19,20)
includes a mould insert (26) seated within its mould cavity portion (22), one of the
mould inserts (26) having an opening (34) enabling moulding material to be supplied
to said material cavity (28a), a central opening (36) and a central axial centre pin
member (38) engaged within the central opening (36) and surrounded by an intermediate
membrane (40) enabling axial movement of the centre pin member (38) within the central
opening (36) along the centre axis.
11. A mould assembly according to any one of the preceding claims in which there are plural
said lock mechanisms (14,16).
12. A mould assembly according to any one of the preceding claims in which the independent
plates (18,19,20) have respective aligned dowel openings (23), and a plate alignment
dowel (25) engages in the dowel openings (23).
13. A mould assembly according to claim 1 in which a mould insert (26), having a material
cavity (28a) for receiving moulding material, is seated in the mould cavity (22a)
formed by the independent plates (18,19,20).
14. A mould assembly according to any one of the preceding claims in which the plates
(18,19,20) have one or more plate locating detents (48) for alignment of said mould
during the injection of moulding material.
15. A mould assembly according to any one of the preceding claims in which each of the
plates (18,19,20) includes a plurality of transport carrier wheels (42) having side
guide bumpers (44).
16. A mould assembly according to claim 15 in which the plates (18,19,20) further include
a plurality of transport bumpers having coupling notches (46).
1. Selbstklemmende Formanordnung (10), umfassend einen Körper (12) und einen Arretiermechanismus
(14, 16), der innerhalb des Körpers untergebracht ist,
wobei der Körper zwei oder mehrere ausgerichtete, unabhängige Platten (18, 19, 20)
aufweist, die jeweils einen Formhohlraumabschnitt (22) und einen Arretierbohrungsabschnitt
(24) mit einer Mittelachse (24a) aufweisen,
wobei der Arretiermechanismus (14, 16) eine Verbindungs- bzw. Spann- bzw. Zugstangenanordnung
(52) zum Ineinandergreifen mit einer der unabhängigen Platten und eine Krafterzeugeranordnung
(54) zum Ineinandergreifen mit einer anderen der unabhängigen Platten umfaßt, wobei
die Verbindungsstangen- und die Krafterzeugeranordnung (52, 54) mit den Arretierbohrungsabschnitten
(24) der Platten ineinandergreifen,
wobei die Verbindungsstangenanordnung (52) eine zum drehbaren Eingriff innerhalb der
Anordnung ausgebildete Verbindungs- bzw. Spann- bzw. Zugstange (56) aufweist, und
die Krafterzeugeranordnung (54) einen Arretierschaft (86) aufweist, der zum Arretiereingriff
mit der Verbindungs- bzw. Spann- bzw. Zugstange (56) und einem bezogen auf den Arretierschaft
(86) zurückgehaltenen Federvorspannelement (90) ausgebildet ist, wodurch die Platten
(18, 19, 20) beim Arretiereingriff der Verbindungs- bzw. Spann- bzw. Zugstange (56)
mit dem Arretierschaft (86), der das Federvorspannelement (90) zusammendrückt, in
geklemmtem Zustand gehalten werden.
2. Formanordnung nach Anspruch 1, bei der die Verbindungsstangenanordnung (52) die Verbindungs-
bzw. Spann- bzw. Zugstange (56) und ein Lager (58) umfaßt, wobei die Verbindungsstange
(56) zum drehbaren Eingriff in das Lager (58) ausgebildet ist und das Lager (58) im
Arretierbohrungsabschnitt (24) einer (16) der unabhängigen Platten sitzt.
3. Formanordnung nach Anspruch 1 oder 2, bei der die Krafterzeugeranordung eine Schlitzöffnung
(104) im Arretierschaft (86) zum Ineinandergreifen mit der Verbindungsstange (56),
ein Arretierlager (88) und einen Rückhalter (92, 102) aufweist, der das Federvorspannelement
(90) in Eingriff gegen das Arretierlager (88) hält, wodurch das Federvorspannelement
(90) beim arretierenden Ineinandergreifen der Verbindungsstange (56) mit dem Arretierschaft
(86) um etwa 50% zusammengedrückt wird.
4. Formanordnung nach Anspruch 2 oder einem davon abhängigen Anspruch, bei der die Verbindungsstange
(56) einen Kopfabschnitt (66) an ihrem einen Ende umfaßt, der sich in drehbarem Eingriff
mit dem Verbindungsstangenlager (58) befindet, einen Arretierstift (64) an ihrem vom
einen Ende entfernten zweiten Ende, sowie einen Schaft (72), der sich zwischen den
Enden erstreckt und mit dem Verbindungsstangenlager (58) in Eingriff befindet.
5. Formanordnung nach Anspruch 3 oder 4, bei der der Arretierschaft (86) einen Behälter
(94) an seinem einen Ende umfaßt, der sich mit dem Arretierlager (88) in Eingriff
befindet, einen Rückhalter (92, 102), der abnehmbar an einem zweiten vom einen Ende
entfernten Ende des Arretierschaftes (86) in Eingriff ist, und einen Stützschaft (100),
der sich zwischen den Enden erstreckt, sich mit dem Arretierlager (88) in Eingriff
befindet und das Federvorspannelement (90) trägt.
6. Formanordnung nach Anspruch 5, bei der der Arretierschaftbehälter (94) der Krafterzeugeranordnung
(54) die Schlitzöffnung (104) darin enthält und weiters eine Arretierfläche (106)
innerhalb des Behälters (94) und an die Schlitzöffnung (104) angrenzend zum arretierenden
Eingriff durch den Verbindungsstangenarretierstift (64) umfaßt.
7. Formanordnung nach Anspruch 6, bei der die Verbindungsstangen- und die Krafterzeugervorrichtung
(52, 54) jeweils eine Mittelachse aufweisen, die mit der Arretierbohrungsabschnittachse
(24a) ausgerichtet ist, sodaß die Verbindungsstange (56) und der Arretierschaft (86)
mit der Arretierbohrungsabschnittachse (24a) ausgerichtet sind, und worin nach axialer
Bewegung der Verbindungsstange (56), die den Arretierstift (64) mit der Arretierfläche
(106) in Eingriff bringt, der Arretiermechanismus die Platten (18, 19, 20) mit einer
Kraft von etwa 13,3 kN (3.000 Pfund) zusammenklemmt.
8. Formanordnung nach Anspruch 7, bei der die Verbindungsstange (56) eine federvorgespannte
Feststellvorrichtung (76) mit einer Achse quer zur Mittelachse der Verbindungsstangenanordnung
(52) umfaßt, die mit einer Öffnung des Verbindungsstangenlagers (58) in Eingriff bringbar
ist, um die Verbindungsstange (56) in einer vorbestimmten Ausrichtung zur Aufnahme
des Verbindungsstangenarretierstifts (64) in der Schlitzöffnung (104) des Arretierschaftes
zu halten.
9. Formanordnung nach einem der vorangegangenen Ansprüche, bei der der Körper (12) weiters
einen Formeinsatz (26) umfaßt, der innerhalb des durch die unabhängigen Platten (18,
19, 20) gebildeten Formhohlraums (22a) sitzt und einen Materialhohlraum (28a) zum
Aufnehmen von Formungsmaterial aufweist, wenn sich die Formanordnung im festgeklemmten
Zustand befindet.
10. Formanordnung nach Anspruch 9, bei der jede der unabhängigen Platten (18, 19, 20)
einen im Formhohlraumabschnitt (22) sitzenden Formeinsatz (26) umfaßt, wobei einer
der Formeinsätze (26) eine Öffnung (34), die es ermöglicht, dem Materialhohlraum (28a)
Formungsmaterial zuzuführen, eine Mittelöffnung (36) und ein Mittelachsenmittelstiftelement
(38) umfaßt, das innerhalb der Mittelöffnung (36) in Eingriff und von einer Zwischenmembran
(40) umgeben ist, wodurch axiale Bewegung des Mittelstiftelements (38) innerhalb der
Mittelöffnung (36) entlang der Mittelachse ermöglicht wird.
11. Formanordnung nach einem der vorangegangenen Ansprüche, bei der es mehrere solche
Arretiermechanismen (14, 16) gibt.
12. Formanordnung nach einem der vorangegangenen Ansprüche, bei der die unabhängigen Platten
(18, 19, 20) jeweilige ausgerichtete Paßstiftöffnungen (23) aufweisen und ein Plattenausrichtungspaßstift
(25) in die Paßstiftöffnungen (23) eingreift.
13. Formanordnung nach Anspruch 1, bei der ein Formeinsatz (26) mit einem Materialhohlraum
(28a) zum Aufnehmen von Formungsmaterial im aus den unabhängigen Platten (18, 19,20)
gebildeten Formhohlraum (22a) sitzt.
14. Formanordnung nach einem der vorangegangenen Ansprüche, bei der die Platten (18, 19,
20) eine oder mehrere Plattenanordnungsfeststellung(en) (48) zur Ausrichtung der Form
während des Einspritzens von Formungsmaterial aufweisen.
15. Formanordnung nach einem der vorangegangenen Ansprüche, bei der jede der Platten (18,
19, 20) eine Vielzahl an Transportträgerrädern (42) mit seitlichen Führungspuffern
(44) umfaßt.
16. Formanordnung nach Anspruch 15, bei der die Platten (18, 19, 20) weiters eine Vielzahl
an Transportpuffern mit Kupplungskerben (46) umfassen.
1. Assemblage de moule auto-serrant (10) comprenant un corps (12) et un mécanisme de
verrouillage (14, 16) logé dans le corps,
le corps comportant deux plaques (18, 19, 20) ou plus qui sont alignées et indépendantes,
chacune ayant une portion de cavité de moule (22) et une portion de perçage de verrouillage
(24) avec un axe central (24a),
le mécanisme de verrouillage (14, 16) incluant un ensemble de tirant (52) pour
une mise en prise avec l'une des plaques indépendantes et un ensemble de générateur
de force (54) pour une mise en prise avec une outre des plaques indépendantes, les
ensembles de tirant et de générateur de force (52, 54) étant mis en prise avec les
portions de perçage de verrouillage (24) des plaques,
l'ensemble de tirant (52) comportant un tirant (56) conçu pour une mise en prise
de rotation dans ledit ensemble et
l'ensemble de générateur de force (54) comportant un arbre de verrouillage (86)
conçu pour une mise en prise de verrouillage avec le tirant (56) et un élément soumis
à l'action d'un ressort (90) retenu relativement à l'arbre de verrouillage (86), par
quoi à la suite de la mise en prise de verrouillage du tirant (56) et de l'arbre de
verrouillage (86) comprimant l'élément (90) soumis à l'action d'un ressort, les plaques
(18, 19, 20) sont maintenues dans l'état serré.
2. Assemblage de moule selon la revendication 1, dans lequel l'ensemble de tirant (52)
comporte un tirant (56) et un palier (58), le tirant (56) étant conçu pour s'engager
à rotation dans ledit palier (58), et le palier (58) étant logé dans la portion de
perçage de verrouillage (24) d'une (16) des plaques indépendantes.
3. Assemblage de moule selon la revendication 1 ou la revendication 2, dans lequel l'ensemble
de générateur de force comporte une ouverture en lente (104) dans ledit arbre de verrouillage
(86) pour une mise en prise avec le tirant (56), un palier de verrouillage (88) et
un élément de retenue (92, 102) maintenant l'élément (90) soumis à l'action d'un ressort
en engagement contre le palier de verrouillage (88) par quoi, lors de la mise en prise
de verrouillage du tirant (56) avec l'arbre de verrouillage (86), l'élément (90) soumis
A l'action d'un ressort est comprimé à environ 50%.
4. Assemblage de moule selon la revendication 2 ou selon n'importe quelle revendication
dépendant de celle-ci, dans lequel le tirant (56) comporte une partie de tête (66)
à l'une de ses extrémités en prise de rotation avec le palier (58) du tirant, un axe
de verrouillage (64) à sa deuxième extrémité distonte de ladite autre extrémité, et
un arbre (72) s'étendant entre lesdites extrémités, engagé dans ledit palier (58)
du tirant.
5. Assemblage de moule selon la revendication 3 ou la revendication 4, dans lequel l'arbre
de verrouillage (86) comporte un logement (94) à une extrémité de celui-ci engagé
dans le palier de verrouillage (88), un élément de retenue (92, 102) amoviblement
en prise avec une deuxième extrémité dudit arbre de verrouillage (86) distante de
ladite autre extrémité, et un arbre de support (100) s'étendent entre lesdites extrémités,
engagé dans le palier de verrouillage (88) et supportent l'élément (90) soumis à l'action
d'un ressort.
6. Assemblage de moule selon la revendication 5, dans lequel le logement (94) de l'arbre
de verrouillage de l'ensemble de générateur de force (54) présente ladite ouverture
en lente (104) à l'intérieur et comporte en outre une surface de verrouillage (106)
dans ledit logement (94) et adjacente à ladite ouverture en lente (104) pour une mise
en prise de verrouillage avec ledit axe de verrouillage (64) du tirant.
7. Assemblage de moule selon la revendication 6, dans lequel les ensembles de tirant
et de générateur de force (52, 54) ont chacun un axe central aligné avec ledit axe
(24a) de la portion de perçage de verrouillage de façon que le tirant (56) et l'arbre
de verrouillage (86) soient alignés avec cet axe (24a) de la portion de perçage de
verrouillage, et dans lequel à la suite d'un mouvement axial du tirant (56) mettant
en prise l'axe de verrouillage (64) avec la surface de verrouillage (106), le mécanisme
de verrouillage serre les plaques (18, 19, 20) ensemble avec une force d'environ 13,3
kN (3000 livres).
8. Assemblage de moule selon la revendication 7, dans lequel le tirant (56) comporte
un positionneur (76) soumis à l'action d'un ressort présentant un axe transversal
à l'axe central de l'ensemble de tirant (52) et pouvant s'engager dans une ouverture
du palier (58) du tirant afin de maintenir le tirant (56) dans un alignement prédéterminé
pour recevoir l'axe de verrouillage (64) du tirant dans l'ouverture en lente (104)
de l'arbre de verrouillage.
9. Assemblage de moule selon l'une des revendications précédentes, dans lequel le corps
(12) comporte en outre un insert de moule (26) logé dans la cavité de moule (22a)
formée par les plaques indépendantes (18, 19, 20) et comportant une cavité de matériau
(28a) pour recevoir le matériau de moulage lorsque l'assemblage de moule est dans
l'état serré.
10. Assemblage de moule selon la revendication 9, dans lequel chacune des plaques indépendantes
(18, 19, 20) comporte un insert de moule (26) logé dans sa portion de cavité de moule
(22), l'un des inserts de moule (26) ayant une ouverture (34) permettant que le matériau
de moulage soit fourni à ladite cavité de matériau (28a), une ouverture centrale (36)
et un élément d'axe de centrage axial central (38) engagé dans l'ouverture centrale
(36) et entouré par une membrane intermédiaire (40) permettant un déplacement axial
de l'élément d'axe de centrage (38) dans l'ouverture centrale (36) le long de l'axe
central.
11. Assemblage de moule selon l'une des revendications précédentes, dans lequel il y a
plusieurs desdits mécanismes de verrouillage (14, 16).
12. Assemblage de moule selon l'une des revendications précédentes, dans lequel les plaques
indépendantes (18, 19, 20) comportent des ouvertures de cheville respectives alignées
(23), et une cheville d'alignement de plaque (25) s'engage dans les ouvertures de
cheville (23).
13. Assemblage de moule selon la revendication 1, dans lequel un insert de moule (26),
présentant une cavité de matériau (28a) pour recevoir le matériau de moulage, est
logé dans la cavité de moule (22a) formé par les plaques indépendantes (18, 19, 20).
14. Assemblage de moule selon l'une des revendications précédentes, dans lequel les plaques
(18, 19, 20) comportent un ou plusieurs positionneurs de localisation de plaque (48)
pour l'alignement dudit moule pendant l'injection du matériau de moulage.
15. Assemblage de moule selon l'une des revendications précédentes, dans lequel chacune
des plaques (18, 19, 20) comporte plusieurs roues porteuses de transport (42) présentant
des tampons-amortisseurs de guidage latéraux (44).
16. Assemblage de moule selon la revendication 15, dans lequel les plaques (18, 19, 20)
comportent en outre plusieurs tampons-amortisseurs de transport présentant des encoches
d'accouplement (46).